US10343497B2 - Method of controlling a climate control system - Google Patents

Method of controlling a climate control system Download PDF

Info

Publication number
US10343497B2
US10343497B2 US14/995,828 US201614995828A US10343497B2 US 10343497 B2 US10343497 B2 US 10343497B2 US 201614995828 A US201614995828 A US 201614995828A US 10343497 B2 US10343497 B2 US 10343497B2
Authority
US
United States
Prior art keywords
desiccant
air
valve
blower
disposed
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Active, expires
Application number
US14/995,828
Other versions
US20160129763A1 (en
Inventor
Johnathan Andrew Line
Michael Kolich
Paul Bryan Hoke
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Ford Global Technologies LLC
Original Assignee
Ford Global Technologies LLC
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Ford Global Technologies LLC filed Critical Ford Global Technologies LLC
Priority to US14/995,828 priority Critical patent/US10343497B2/en
Publication of US20160129763A1 publication Critical patent/US20160129763A1/en
Application granted granted Critical
Publication of US10343497B2 publication Critical patent/US10343497B2/en
Active legal-status Critical Current
Adjusted expiration legal-status Critical

Links

Images

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H3/00Other air-treating devices
    • B60H3/02Moistening ; Devices influencing humidity levels, i.e. humidity control
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H1/00Heating, cooling or ventilating [HVAC] devices
    • B60H1/24Devices purely for ventilating or where the heating or cooling is irrelevant
    • B60H1/241Devices purely for ventilating or where the heating or cooling is irrelevant characterised by the location of ventilation devices in the vehicle
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H3/00Other air-treating devices
    • B60H3/02Moistening ; Devices influencing humidity levels, i.e. humidity control
    • B60H3/024Moistening ; Devices influencing humidity levels, i.e. humidity control for only dehumidifying the air
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60HARRANGEMENTS OF HEATING, COOLING, VENTILATING OR OTHER AIR-TREATING DEVICES SPECIALLY ADAPTED FOR PASSENGER OR GOODS SPACES OF VEHICLES
    • B60H3/00Other air-treating devices
    • B60H3/02Moistening ; Devices influencing humidity levels, i.e. humidity control
    • B60H2003/028Moistening ; Devices influencing humidity levels, i.e. humidity control the devices comprising regeneration means

Definitions

  • the present application relates to a climate control system for a vehicle and a method of control.
  • a desiccant based humidification/dehumidification system is disclosed in U.S. Pat. No. 6,481,222.
  • a method of controlling a climate control system may include positioning a valve in a first position to block airflow from a desiccant to a port, permit airflow from the port to a blower via the valve, and circulate air through the desiccant and then through a trim component.
  • the valve may be disposed between the port and the blower.
  • the desiccant may be disposed between the blower and the valve.
  • a method of controlling a climate control system may include enabling airflow through a trim component to a desiccant and then to a blower while blocking airflow through a port with a first valve and blocking airflow from the blower to the desiccant with a second valve.
  • the first valve may be disposed between the port and the blower.
  • the second valve may be disposed between the blower and the desiccant.
  • the desiccant may be disposed between the first and second valves.
  • FIG. 1 is a schematic of a first embodiment of a climate control system illustrating airflow in a first direction.
  • FIG. 2 is a schematic of a first embodiment of a climate control system illustrating airflow in a second direction.
  • FIG. 3 is a schematic of a first embodiment of a climate control system illustrating airflow recirculation.
  • FIG. 4 is a schematic of a second embodiment of a climate control system illustrating a ventilation mode.
  • FIG. 5 is a schematic of the second embodiment of a climate control system illustrating a suction mode.
  • FIG. 6 is a schematic of a third embodiment of a climate control system.
  • the vehicle 10 may be a motor vehicle, such as a car or truck.
  • the vehicle 10 may have a passenger compartment 12 , a first trim component 14 , a climate control system 16 , and at least one control module 18 .
  • the passenger compartment 12 may be disposed inside the vehicle 10 and may receive one or more occupants.
  • the first trim component 14 may be disposed in the passenger compartment 12 .
  • the first trim component 14 may be a vehicle seat, door panel, console, package tray, interior trim panel, or headliner and may include a trim cover 20 .
  • the trim cover 20 may form at least a portion of an exterior surface of the first trim component 14 .
  • the trim cover 20 may be made of any suitable material, such as fabric, leather, vinyl, a polymeric material such as plastic, or combinations thereof.
  • the trim cover 20 may include a plurality of openings 22 that may permit air to pass through the trim cover 20 .
  • the trim cover 20 may be disposed proximate or adjacent to a spacer material 24 , such as a cushion made of an air permeable material like an open cell foam, that may have air passages or openings that permit air to pass through the spacer material 24 .
  • the climate control system 16 may be provided to circulate air and/or change the temperature of circulated air.
  • the climate control system 16 is configured as a self-contained module that may be spaced apart from and not fluidly connected to a vehicle HVAC (heating ventilation and air conditioning) system that may be generally disposed under an instrument panel of the vehicle 10 .
  • the climate control system 16 may include a ventilation system 30 having a blower 32 , a heat exchanger 34 , a desiccant 36 , a first valve 38 , and at least one air duct 40 .
  • the blower 32 may be provided to circulate air through the ventilation system 30 .
  • the blower 32 may be configured as a fan or blower wheel that may be rotated by an electric motor.
  • the blower 32 may be reversible. As such, the blower 32 may circulate air through the ventilation system 30 in a first direction and in a second direction disposed opposite the first direction depending on its direction of rotation.
  • the heat exchanger 34 may be fluidly connected to the blower 32 by the air duct 40 .
  • the heat exchanger 34 may be configured to heat and/or cool air that passes through the ventilation system 30 .
  • the heat exchanger 34 may be of any suitable type.
  • the heat exchanger may be configured as a resistance wire heater, a positive temperature coefficient (PTC) heater, a fluid-based heat exchanger like a heater core or evaporator core, or a thermoelectric device that may or may not be thermodynamically reversible.
  • PTC positive temperature coefficient
  • Examples of devices that may be thermodynamically reversible (or that may heat and cool air) include Peltier devices or devices that provide Peltier, Seebeck or Thomson effects.
  • the heat exchanger 34 may be omitted in one or more embodiments.
  • the desiccant 36 may be fluidly connected to the heat exchanger 34 by the air duct 40 .
  • the desiccant 36 may be provided to capture moisture from air.
  • the desiccant 36 may be made partially or entirely from volcanic rock particles, such as ash or small volcanic rocks. Volcanic rock particles are capable of absorbing and desorbing moisture without damage to its crystal structure and may be recyclable.
  • the desiccant 36 may be configured as a replaceable cartridge or filter that may include an air permeable membrane that may contain the volcanic rock particles while permitting air to pass through.
  • the desiccant 36 may be mounted to or in the air duct 40 . In at least one embodiment, the desiccant 36 may be located proximate or may engage the trim cover 20 and/or spacer material 24 to help capture moisture from air passing through the openings 22 in the trim cover 20 .
  • the first valve 38 may help control or direct airflow through the ventilation system 30 .
  • the first valve 38 may be disposed in the air duct 40 between the blower 32 and the desiccant 36 .
  • the first valve 38 may also be connected to a port 42 that may permit air to enter or exit the ventilation system 30 .
  • the port 42 may be disposed in the passenger compartment 12 and may receive air from or exhaust air to the passenger compartment 12 .
  • the first valve 38 may be coupled to an actuator, such as a solenoid or motor, and may move between a plurality of positions.
  • the first valve 38 may move between a first position and a second position as will be described in more detail below.
  • the first valve 38 may also be positioned in intermediate positions or “mixed mode” positions between the first and second positions in one or more embodiments.
  • One or more controllers or control modules 18 may be provided to monitor and control various components and systems of the vehicle 10 and/or climate control system 16 .
  • the control module 18 may be electrically connected to or communicate with components of the climate control system 16 , such as the blower 32 , heat exchanger 34 , and first valve 38 .
  • the control module 18 may also process input signals or data from various input devices or sensors. These input devices may include a humidity sensor 44 and an input device 46 .
  • the humidity sensor 44 may be configured to detect the humidity of air in the passenger compartment.
  • the humidity sensor 44 may be provided with the climate control system 16 or may be provided with the HVAC system in one or more embodiments.
  • the input device 46 may be configured to receive an operator input indicative of an operation mode of the climate control system 16 .
  • Operation modes may include an “off” setting in which operation of the climate control system 16 is disabled and at least one “on” setting in which operation of the climate control system 16 is enabled. Additional settings may be selected when operation of the climate control system 16 is enabled. For instance, a cool setting in which cooled air is circulated through the ventilation system 30 or a heat setting in which heated air is circulated through the ventilation system 30 may be provided. In addition, the direction of airflow through the ventilation system 30 may be selected or associated with an operation mode. Such settings may also be automatically selected by the control module 18 based on the temperature and/or humidity of air in the passenger compartment 12 .
  • a dryer setting may also be provided or selected for removing moisture from the desiccant 36 in one or more embodiments.
  • Such a dryer setting may be executed when the vehicle is not occupied.
  • a dryer setting may be executed at a predetermined amount of time after the vehicle ignition is turned off and/or when an occupant is not detected in the vehicle.
  • FIGS. 1-3 various operation modes of the climate control system 16 are illustrated.
  • the climate control system 16 is shown in a ventilation mode.
  • the blower 32 may circulate air in a first direction, or a counterclockwise direction from the perspective shown.
  • the first valve 38 is depicted in a first position. In the first position, the first valve 38 may fluidly couple the blower 32 to the port 42 while blocking airflow from the desiccant 36 to the first valve 38 . As such, air may enter the port 42 and pass through the first valve 38 due to suction created by the blower 32 . Air may then exit the blower 32 and passes through the heat exchanger 34 , desiccant 36 , and then the openings 22 in the trim cover 20 .
  • the operation state of the heat exchanger 34 may be based in part on the air humidity detected by the humidity sensor 44 . For example, if the air humidity detected by the humidity sensor 44 is greater than a threshold humidity value, then the heat exchanger 34 may cool air circulating through the ventilation system 30 to remove help remove humidity from the air. If the air humidity detected by the humidity sensor 44 is not greater than a threshold humidity value, then the heat exchanger 34 may not cool air circulating through the ventilation system 30 .
  • the threshold value may be a predetermined value based on vehicle development testing or design specifications.
  • the climate control system 16 is shown in a suction mode.
  • the blower 32 may circulate air in a second direction, or a clockwise direction from the perspective shown.
  • the first valve 38 is rotated from the position shown in FIG. 1 to an intermediate position.
  • air may enter the openings 22 in the trim cover 20 and pass through the desiccant 36 and heat exchanger 34 due to suction created by the blower 32 .
  • Air may then exit the blower 32 and pass through the first valve 38 and out the port 42 .
  • the operation state of the heat exchanger 34 may be based in part on the air humidity detected by the humidity sensor 44 .
  • the heat exchanger 34 may cool air circulating through the ventilation system 30 to remove help remove humidity from the air. If the air humidity detected by the humidity sensor 44 is not greater than a threshold humidity value, then the heat exchanger 34 may not cool air circulating through the ventilation system 30 .
  • the climate control system 16 is shown in a recirculation mode.
  • the blower 32 may circulate air in the first or second directions.
  • the first valve 38 is shown in a second position in which the first valve 38 may fluidly connect the blower 32 and the desiccant 36 while inhibiting airflow through the port 42 , thereby recirculating air in the ventilation system 30 .
  • air may flow in a first direction (counterclockwise as shown) or second direction (clockwise) depending on the direction of rotation of the blower 32 without entering or exiting the port 42 .
  • Execution of the recirculation mode may be based on an air humidity level detected by the humidity sensor 44 . For instance, if the air humidity detected by the humidity sensor 44 is greater than a threshold humidity value, air may be recirculated and the heat exchanger 34 may cool air circulating through the ventilation system 30 to remove help remove humidity from the air.
  • a dryer mode may be selected or automatically executed by the control module 18 in one or more embodiments.
  • the blower 32 may circulate air in either the first or second directions and the first valve 38 may be in the first position, second position, or an intermediate position disposed between the first and second positions.
  • the heat exchanger 34 may heat the air passing through the ventilation system 30 . At least a portion of the heated air may be circulated or recirculated through the desiccant 36 , thereby heating the desiccant 36 to help remove or release moisture.
  • HVAC heating ventilation and air conditioning
  • the HVAC system 50 may include an air intake/recirculation chamber 52 , a blower 54 , at least one HVAC heat exchanger, and a plenum 58 .
  • the HVAC system 50 may be located under an instrument panel 60 in one or more embodiments.
  • the air intake/recirculation chamber 52 may receive air from outside the vehicle via an inlet 62 or may receive air from inside the passenger compartment 12 based on the position of a recirculation door that is provided with the air intake/recirculation chamber 52 .
  • the blower 54 may be a fan or blower wheel that is driven by a motor as previously described.
  • the blower 54 may rotate in a single direction in one or more embodiments such that air is received from the air intake/recirculation chamber 52 .
  • HVAC heat exchanger 56 may be disposed downstream from the blower 54 .
  • HVAC heat exchangers may include a heater core, evaporator core, or resistance wire heating element in one or more embodiments.
  • the plenum 58 may receive air that passes through at least one HVAC heat exchanger 56 and direct air in one or more directions, such as toward the windshield, instrument panel vents, side defroster vents, and/or floor vents.
  • An inlet air passage 70 and an outlet air passage 72 may fluidly couple the climate control system 16 to the HVAC system 50 .
  • the inlet air passage 70 may receive air from the HVAC system.
  • the inlet air passage 70 may be disposed downstream from the blower 54 but upstream from the HVAC heat exchanger 56 as shown in FIG. 4 or downstream from the HVAC heat exchanger 56 , such as proximate the plenum 58 , as shown in FIG. 5 .
  • the outlet air passage 72 may be disposed upstream of the blower 54 . As such, the outlet air passage 72 may be disposed between the air intake/recirculation chamber 52 and the blower 54 in one or more embodiments.
  • the climate control system 16 ′, 16 ′′ may include a heat exchanger 34 , desiccant 36 , and a first valve 38 as previously described.
  • the first valve 38 may be fluidly connected to the outlet air passage 72 rather than directly to a blower 32 that is provided with the climate control system 16 as described above.
  • the climate control system 16 ′, 16 ′′ may also include a second valve 74 that controls airflow through the inlet air passage 70 .
  • the second valve 74 may be controlled by an actuator such as a solenoid or motor, which in turn may be controlled by the control module 18 .
  • the second valve 74 may move between a first position in which airflow through the inlet air passage 70 is enabled and a second position in which airflow through the inlet air passage 70 is disabled.
  • the climate control system 16 may operate in various modes as previously described.
  • the blower 54 may circulate air in a first direction, or a counterclockwise direction from the perspective shown to the inlet air passage 70 .
  • the second valve 74 may be disposed in a first position in which airflow is permitted through the inlet air passage 70 to the heat exchanger 34 (if provided) and the desiccant 36 .
  • the first valve 38 may at least partially block airflow from the desiccant 36 through the first valve 38 . As such, air may be ventilated through the openings 22 in the trim cover 20 . If a heat exchanger 34 is provided, its operation state may again be based in part on the air humidity detected by the humidity sensor 44 as previously described.
  • the blower 54 may circulate air in a first direction.
  • the second valve 74 may be closed or disposed in a second position to inhibit airflow through the inlet air passage 70 .
  • the first valve 38 may be at least partially opened to permit airflow from the desiccant 36 to the outlet air passage 72 . As such, air may enter the openings 22 in the trim cover 20 and pass through the desiccant 36 , first valve 38 , and outlet air passage 72 due to suction created by the blower 32 .
  • a recirculation mode may also be provided by at least partially opening the first valve 38 and the second valve 74 .
  • the blower 32 may circulate air to the inlet air passage 70 and through the second valve 74 , heat exchanger 34 , desiccant 36 , first valve 38 , and outlet air passage 72 .
  • An example of a recirculation mode is shown in FIG. 6 , but may also be provided in the same manner with the embodiment shown in FIGS. 4 and 5 .
  • a dryer mode may be selected or automatically executed by the control module 18 in one or more embodiments.
  • the second valve 74 may be at least partially opened to permit the blower 54 to circulate air through the inlet air passage 70 and to the heat exchanger 34 and desiccant 36 .
  • the heat exchanger 34 may heat the air passing through the ventilation system 30 . At least a portion of the heated air may be circulated or recirculated through the desiccant 36 , thereby heating the desiccant 36 to help remove or release moisture.
  • a dryer mode could be used to release moisture from the desiccant 36 to release moisture into the cabin to maintain a predetermined or comfortable level of humidity.
  • the heat exchanger 34 may be omitted and heated air may be provided by the HVAC system 50 in the dryer mode in one or more embodiments.
  • the climate control system may be configured such that the desiccant 36 may be in selective communication with the environment outside the vehicle 10 .
  • the climate control system may be switched to an outside air exchange mode in which humid air, such as humid air released by the desiccant 36 may be exhausted to the surrounding environment.
  • humid air such as humid air released by the desiccant 36 may be exhausted to the surrounding environment.
  • Such air may be heated by the heat exchanger 34 to speed up drying of the desiccant 36 or enable drying of the desiccant 36 in hot ambient temperature conditions.
  • the climate control systems described above may help reduce moisture in air that is circulated in a vehicle passenger compartment, thereby helping improve occupant comfort. Reducing humidity levels and improving occupant comfort may also result in reduced cooling demands made by a vehicle occupant upon a HVAC system 50 , thereby helping reduce energy and fuel consumption that may be otherwise be used to power the HVAC system 50 . Moreover, moisture may be reduced in the air inside the vehicle to inhibit window fogging, such as at vehicle startup and/or in cold or cool environmental conditions in which fogging may otherwise occur. In addition, the climate control systems described above may provide more localized cooling, such as in a seat application in which cooling may be provided more directly to a seat occupant. Use of the desiccant may also help remove moisture and potential moisture discomfort and odors that may be associated with perspiration.

Landscapes

  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Physics & Mathematics (AREA)
  • Thermal Sciences (AREA)
  • Air-Conditioning For Vehicles (AREA)

Abstract

A method of controlling a climate control system. The method may include positioning a valve to block airflow from a desiccant to a port, permit airflow from the port to a blower, and circulate air through the desiccant and then through a trim component. The valve may be disposed between the port and the blower. The desiccant may be disposed between the blower and the valve.

Description

CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation of U.S. application Ser. No. 13/418,549, filed Mar. 13, 2012, now U.S. Pat. No. 9,266,407, the disclosure of which is hereby incorporated in its entirety by reference herein.
TECHNICAL FIELD
The present application relates to a climate control system for a vehicle and a method of control.
BACKGROUND
A desiccant based humidification/dehumidification system is disclosed in U.S. Pat. No. 6,481,222.
SUMMARY
In at least one embodiment, a method of controlling a climate control system is provided. The method may include positioning a valve in a first position to block airflow from a desiccant to a port, permit airflow from the port to a blower via the valve, and circulate air through the desiccant and then through a trim component. The valve may be disposed between the port and the blower. The desiccant may be disposed between the blower and the valve.
In at least one embodiment, a method of controlling a climate control system is provided. The method may include enabling airflow through a trim component to a desiccant and then to a blower while blocking airflow through a port with a first valve and blocking airflow from the blower to the desiccant with a second valve. The first valve may be disposed between the port and the blower. The second valve may be disposed between the blower and the desiccant. The desiccant may be disposed between the first and second valves.
BRIEF DESCRIPTION OF THE DRAWINGS
FIG. 1 is a schematic of a first embodiment of a climate control system illustrating airflow in a first direction.
FIG. 2 is a schematic of a first embodiment of a climate control system illustrating airflow in a second direction.
FIG. 3 is a schematic of a first embodiment of a climate control system illustrating airflow recirculation.
FIG. 4 is a schematic of a second embodiment of a climate control system illustrating a ventilation mode.
FIG. 5 is a schematic of the second embodiment of a climate control system illustrating a suction mode.
FIG. 6 is a schematic of a third embodiment of a climate control system.
DETAILED DESCRIPTION
As required, detailed embodiments of the present invention are disclosed herein; however, it is to be understood that the disclosed embodiments are merely exemplary of the invention that may be embodied in various and alternative forms. The figures are not necessarily to scale; some features may be exaggerated or minimized to show details of particular components. Therefore, specific structural and functional details disclosed herein are not to be interpreted as limiting, but merely as a representative basis for teaching one skilled in the art to variously employ the present invention.
Referring to FIG. 1, a schematic representation of a vehicle 10 is shown. The vehicle 10 may be a motor vehicle, such as a car or truck. The vehicle 10 may have a passenger compartment 12, a first trim component 14, a climate control system 16, and at least one control module 18.
The passenger compartment 12 may be disposed inside the vehicle 10 and may receive one or more occupants. The first trim component 14 may be disposed in the passenger compartment 12. The first trim component 14 may be a vehicle seat, door panel, console, package tray, interior trim panel, or headliner and may include a trim cover 20.
The trim cover 20 may form at least a portion of an exterior surface of the first trim component 14. The trim cover 20 may be made of any suitable material, such as fabric, leather, vinyl, a polymeric material such as plastic, or combinations thereof. The trim cover 20 may include a plurality of openings 22 that may permit air to pass through the trim cover 20. In at least one embodiment, the trim cover 20 may be disposed proximate or adjacent to a spacer material 24, such as a cushion made of an air permeable material like an open cell foam, that may have air passages or openings that permit air to pass through the spacer material 24.
The climate control system 16 may be provided to circulate air and/or change the temperature of circulated air. In FIG. 1, the climate control system 16 is configured as a self-contained module that may be spaced apart from and not fluidly connected to a vehicle HVAC (heating ventilation and air conditioning) system that may be generally disposed under an instrument panel of the vehicle 10. The climate control system 16 may include a ventilation system 30 having a blower 32, a heat exchanger 34, a desiccant 36, a first valve 38, and at least one air duct 40.
The blower 32 may be provided to circulate air through the ventilation system 30. The blower 32 may be configured as a fan or blower wheel that may be rotated by an electric motor. The blower 32 may be reversible. As such, the blower 32 may circulate air through the ventilation system 30 in a first direction and in a second direction disposed opposite the first direction depending on its direction of rotation.
The heat exchanger 34 may be fluidly connected to the blower 32 by the air duct 40. The heat exchanger 34 may be configured to heat and/or cool air that passes through the ventilation system 30. The heat exchanger 34 may be of any suitable type. For example, the heat exchanger may be configured as a resistance wire heater, a positive temperature coefficient (PTC) heater, a fluid-based heat exchanger like a heater core or evaporator core, or a thermoelectric device that may or may not be thermodynamically reversible. Examples of devices that may be thermodynamically reversible (or that may heat and cool air) include Peltier devices or devices that provide Peltier, Seebeck or Thomson effects. The heat exchanger 34 may be omitted in one or more embodiments.
The desiccant 36 may be fluidly connected to the heat exchanger 34 by the air duct 40. The desiccant 36 may be provided to capture moisture from air. The desiccant 36 may be made partially or entirely from volcanic rock particles, such as ash or small volcanic rocks. Volcanic rock particles are capable of absorbing and desorbing moisture without damage to its crystal structure and may be recyclable. The desiccant 36 may be configured as a replaceable cartridge or filter that may include an air permeable membrane that may contain the volcanic rock particles while permitting air to pass through. The desiccant 36 may be mounted to or in the air duct 40. In at least one embodiment, the desiccant 36 may be located proximate or may engage the trim cover 20 and/or spacer material 24 to help capture moisture from air passing through the openings 22 in the trim cover 20.
The first valve 38 may help control or direct airflow through the ventilation system 30. In at least one embodiment, the first valve 38 may be disposed in the air duct 40 between the blower 32 and the desiccant 36. The first valve 38 may also be connected to a port 42 that may permit air to enter or exit the ventilation system 30. The port 42 may be disposed in the passenger compartment 12 and may receive air from or exhaust air to the passenger compartment 12. The first valve 38 may be coupled to an actuator, such as a solenoid or motor, and may move between a plurality of positions. For example, the first valve 38 may move between a first position and a second position as will be described in more detail below. The first valve 38 may also be positioned in intermediate positions or “mixed mode” positions between the first and second positions in one or more embodiments.
One or more controllers or control modules 18 may be provided to monitor and control various components and systems of the vehicle 10 and/or climate control system 16. For example, the control module 18 may be electrically connected to or communicate with components of the climate control system 16, such as the blower 32, heat exchanger 34, and first valve 38. In addition, the control module 18 may also process input signals or data from various input devices or sensors. These input devices may include a humidity sensor 44 and an input device 46.
The humidity sensor 44 may be configured to detect the humidity of air in the passenger compartment. The humidity sensor 44 may be provided with the climate control system 16 or may be provided with the HVAC system in one or more embodiments.
The input device 46, if provided, may be configured to receive an operator input indicative of an operation mode of the climate control system 16. Operation modes may include an “off” setting in which operation of the climate control system 16 is disabled and at least one “on” setting in which operation of the climate control system 16 is enabled. Additional settings may be selected when operation of the climate control system 16 is enabled. For instance, a cool setting in which cooled air is circulated through the ventilation system 30 or a heat setting in which heated air is circulated through the ventilation system 30 may be provided. In addition, the direction of airflow through the ventilation system 30 may be selected or associated with an operation mode. Such settings may also be automatically selected by the control module 18 based on the temperature and/or humidity of air in the passenger compartment 12. In addition, a dryer setting may also be provided or selected for removing moisture from the desiccant 36 in one or more embodiments. Such a dryer setting may be executed when the vehicle is not occupied. For example, a dryer setting may be executed at a predetermined amount of time after the vehicle ignition is turned off and/or when an occupant is not detected in the vehicle.
Referring to FIGS. 1-3, various operation modes of the climate control system 16 are illustrated.
In FIG. 1, the climate control system 16 is shown in a ventilation mode. In the ventilation mode, the blower 32 may circulate air in a first direction, or a counterclockwise direction from the perspective shown. The first valve 38 is depicted in a first position. In the first position, the first valve 38 may fluidly couple the blower 32 to the port 42 while blocking airflow from the desiccant 36 to the first valve 38. As such, air may enter the port 42 and pass through the first valve 38 due to suction created by the blower 32. Air may then exit the blower 32 and passes through the heat exchanger 34, desiccant 36, and then the openings 22 in the trim cover 20. The operation state of the heat exchanger 34 may be based in part on the air humidity detected by the humidity sensor 44. For example, if the air humidity detected by the humidity sensor 44 is greater than a threshold humidity value, then the heat exchanger 34 may cool air circulating through the ventilation system 30 to remove help remove humidity from the air. If the air humidity detected by the humidity sensor 44 is not greater than a threshold humidity value, then the heat exchanger 34 may not cool air circulating through the ventilation system 30. The threshold value may be a predetermined value based on vehicle development testing or design specifications.
In FIG. 2, the climate control system 16 is shown in a suction mode. In the suction mode, the blower 32 may circulate air in a second direction, or a clockwise direction from the perspective shown. The first valve 38 is rotated from the position shown in FIG. 1 to an intermediate position. As such, air may enter the openings 22 in the trim cover 20 and pass through the desiccant 36 and heat exchanger 34 due to suction created by the blower 32. Air may then exit the blower 32 and pass through the first valve 38 and out the port 42. The operation state of the heat exchanger 34 may be based in part on the air humidity detected by the humidity sensor 44. For example, if the air humidity detected by the humidity sensor 44 is greater than a threshold humidity value, then the heat exchanger 34 may cool air circulating through the ventilation system 30 to remove help remove humidity from the air. If the air humidity detected by the humidity sensor 44 is not greater than a threshold humidity value, then the heat exchanger 34 may not cool air circulating through the ventilation system 30.
In FIG. 3, the climate control system 16 is shown in a recirculation mode. In the recirculation mode, the blower 32 may circulate air in the first or second directions. The first valve 38 is shown in a second position in which the first valve 38 may fluidly connect the blower 32 and the desiccant 36 while inhibiting airflow through the port 42, thereby recirculating air in the ventilation system 30. As such, air may flow in a first direction (counterclockwise as shown) or second direction (clockwise) depending on the direction of rotation of the blower 32 without entering or exiting the port 42. Execution of the recirculation mode may be based on an air humidity level detected by the humidity sensor 44. For instance, if the air humidity detected by the humidity sensor 44 is greater than a threshold humidity value, air may be recirculated and the heat exchanger 34 may cool air circulating through the ventilation system 30 to remove help remove humidity from the air.
A dryer mode may be selected or automatically executed by the control module 18 in one or more embodiments. In the dryer mode, the blower 32 may circulate air in either the first or second directions and the first valve 38 may be in the first position, second position, or an intermediate position disposed between the first and second positions. The heat exchanger 34 may heat the air passing through the ventilation system 30. At least a portion of the heated air may be circulated or recirculated through the desiccant 36, thereby heating the desiccant 36 to help remove or release moisture.
Referring to FIGS. 4 and 6, second and third embodiments of a climate control system 16′, 16″ are shown. In these embodiments, the climate control system 16′, 16″ is fluidly connected to a vehicle HVAC (heating ventilation and air conditioning) system 50. The HVAC system 50 may include an air intake/recirculation chamber 52, a blower 54, at least one HVAC heat exchanger, and a plenum 58. The HVAC system 50 may be located under an instrument panel 60 in one or more embodiments.
The air intake/recirculation chamber 52 may receive air from outside the vehicle via an inlet 62 or may receive air from inside the passenger compartment 12 based on the position of a recirculation door that is provided with the air intake/recirculation chamber 52.
The blower 54 may be a fan or blower wheel that is driven by a motor as previously described. The blower 54 may rotate in a single direction in one or more embodiments such that air is received from the air intake/recirculation chamber 52.
At least one HVAC heat exchanger 56 may be disposed downstream from the blower 54. HVAC heat exchangers may include a heater core, evaporator core, or resistance wire heating element in one or more embodiments.
The plenum 58 may receive air that passes through at least one HVAC heat exchanger 56 and direct air in one or more directions, such as toward the windshield, instrument panel vents, side defroster vents, and/or floor vents.
An inlet air passage 70 and an outlet air passage 72 may fluidly couple the climate control system 16 to the HVAC system 50. The inlet air passage 70 may receive air from the HVAC system. The inlet air passage 70 may be disposed downstream from the blower 54 but upstream from the HVAC heat exchanger 56 as shown in FIG. 4 or downstream from the HVAC heat exchanger 56, such as proximate the plenum 58, as shown in FIG. 5.
The outlet air passage 72 may be disposed upstream of the blower 54. As such, the outlet air passage 72 may be disposed between the air intake/recirculation chamber 52 and the blower 54 in one or more embodiments.
The climate control system 16′, 16″ may include a heat exchanger 34, desiccant 36, and a first valve 38 as previously described. The first valve 38 may be fluidly connected to the outlet air passage 72 rather than directly to a blower 32 that is provided with the climate control system 16 as described above. The climate control system 16′, 16″ may also include a second valve 74 that controls airflow through the inlet air passage 70. The second valve 74 may be controlled by an actuator such as a solenoid or motor, which in turn may be controlled by the control module 18. The second valve 74 may move between a first position in which airflow through the inlet air passage 70 is enabled and a second position in which airflow through the inlet air passage 70 is disabled.
The climate control system 16 may operate in various modes as previously described. In the ventilation mode as shown in FIG. 4, the blower 54 may circulate air in a first direction, or a counterclockwise direction from the perspective shown to the inlet air passage 70. The second valve 74 may be disposed in a first position in which airflow is permitted through the inlet air passage 70 to the heat exchanger 34 (if provided) and the desiccant 36. The first valve 38 may at least partially block airflow from the desiccant 36 through the first valve 38. As such, air may be ventilated through the openings 22 in the trim cover 20. If a heat exchanger 34 is provided, its operation state may again be based in part on the air humidity detected by the humidity sensor 44 as previously described.
In a suction mode as shown in FIG. 5, the blower 54 may circulate air in a first direction. The second valve 74 may be closed or disposed in a second position to inhibit airflow through the inlet air passage 70. The first valve 38 may be at least partially opened to permit airflow from the desiccant 36 to the outlet air passage 72. As such, air may enter the openings 22 in the trim cover 20 and pass through the desiccant 36, first valve 38, and outlet air passage 72 due to suction created by the blower 32.
A recirculation mode may also be provided by at least partially opening the first valve 38 and the second valve 74. As such, the blower 32 may circulate air to the inlet air passage 70 and through the second valve 74, heat exchanger 34, desiccant 36, first valve 38, and outlet air passage 72. An example of a recirculation mode is shown in FIG. 6, but may also be provided in the same manner with the embodiment shown in FIGS. 4 and 5.
A dryer mode may be selected or automatically executed by the control module 18 in one or more embodiments. In the dryer mode, the second valve 74 may be at least partially opened to permit the blower 54 to circulate air through the inlet air passage 70 and to the heat exchanger 34 and desiccant 36. The heat exchanger 34 may heat the air passing through the ventilation system 30. At least a portion of the heated air may be circulated or recirculated through the desiccant 36, thereby heating the desiccant 36 to help remove or release moisture. In addition, a dryer mode could be used to release moisture from the desiccant 36 to release moisture into the cabin to maintain a predetermined or comfortable level of humidity. Optionally, the heat exchanger 34 may be omitted and heated air may be provided by the HVAC system 50 in the dryer mode in one or more embodiments.
In another embodiment, the climate control system may be configured such that the desiccant 36 may be in selective communication with the environment outside the vehicle 10. As such, the climate control system may be switched to an outside air exchange mode in which humid air, such as humid air released by the desiccant 36 may be exhausted to the surrounding environment. Such air may be heated by the heat exchanger 34 to speed up drying of the desiccant 36 or enable drying of the desiccant 36 in hot ambient temperature conditions.
The climate control systems described above may help reduce moisture in air that is circulated in a vehicle passenger compartment, thereby helping improve occupant comfort. Reducing humidity levels and improving occupant comfort may also result in reduced cooling demands made by a vehicle occupant upon a HVAC system 50, thereby helping reduce energy and fuel consumption that may be otherwise be used to power the HVAC system 50. Moreover, moisture may be reduced in the air inside the vehicle to inhibit window fogging, such as at vehicle startup and/or in cold or cool environmental conditions in which fogging may otherwise occur. In addition, the climate control systems described above may provide more localized cooling, such as in a seat application in which cooling may be provided more directly to a seat occupant. Use of the desiccant may also help remove moisture and potential moisture discomfort and odors that may be associated with perspiration.
While exemplary embodiments are described above, it is not intended that these embodiments describe all possible forms of the invention. Rather, the words used in the specification are words of description rather than limitation, and it is understood that various changes may be made without departing from the spirit and scope of the invention. Additionally, the features of various implementing embodiments may be combined to form further embodiments of the invention.

Claims (16)

What is claimed is:
1. A method of controlling a climate control system comprising:
positioning a valve in a first position to block airflow from a desiccant to a port and permit airflow from the port to a blower via the valve and circulate air through the desiccant and then through a trim component, wherein the valve is disposed between the port and the blower and the desiccant is disposed between the blower and the valve.
2. The method of claim 1 wherein air enters the port and is circulated by the blower through a heat exchanger that is fluidly connected to the blower and the desiccant via an air duct and through the desiccant, and then exhausted through the trim component when the valve is in the first position.
3. The method of claim 2 wherein the heat exchanger cools air received from the blower to remove moisture from air that is provided to the desiccant.
4. The method of claim 2 wherein air enters the trim component and is circulated by the blower through the desiccant to the heat exchanger and is then exhausted through the port when the valve is in an intermediate position.
5. The method of claim 4 wherein the blower circulates air in a first direction when the valve is in the first position and the blower circulates air in a second direction that is disposed opposite the first direction when the valve is in the intermediate position.
6. The method of claim 1 wherein the desiccant is volcanic rock.
7. The method of claim 1 wherein the trim component is an interior trim panel.
8. The method of claim 1 wherein the trim component is a headliner.
9. A method of controlling a climate control system comprising:
enabling airflow through a trim component to a desiccant and then to a blower while blocking airflow through a port with a first valve that is disposed between the port and blower, and blocking airflow from the blower to the desiccant with a second valve that is disposed between the blower and the desiccant, wherein the desiccant is disposed between the first and second valves.
10. The method of claim 9 wherein the desiccant is volcanic ash and is disposed adjacent to a spacer material that is disposed between the desiccant and openings in the trim component.
11. The method of claim 9 wherein the first valve is disposed in an inlet air passage that is disposed between the blower and an HVAC heat exchanger that is provided with an HVAC system;
a heat exchanger is disposed between the first valve and the desiccant; and
the second valve is disposed in an outlet air passage between the desiccant and the HVAC system;
wherein air is circulated from the HVAC system through the desiccant and the trim component when the first valve is open.
12. The method of claim 11 wherein the blower is provided with the HVAC system and pulls air through the trim component and the desiccant via the outlet air passage when the first valve is closed and the second valve is open.
13. The method of claim 12 wherein air is recirculated through the desiccant when the first and second valves are open.
14. The method of claim 11 wherein humidity is removed from the desiccant when the first valve is open and the heat exchanger heats air received from the HVAC system.
15. The method of claim 11 wherein the inlet air passage receives air that is conditioned by the HVAC heat exchanger.
16. The method of claim 11 wherein the inlet air passage does not receive air that is conditioned by the HVAC heat exchanger.
US14/995,828 2012-03-13 2016-01-14 Method of controlling a climate control system Active 2033-11-28 US10343497B2 (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
US14/995,828 US10343497B2 (en) 2012-03-13 2016-01-14 Method of controlling a climate control system

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
US13/418,549 US9266407B2 (en) 2012-03-13 2012-03-13 Climate control system for a vehicle and a method of control
US14/995,828 US10343497B2 (en) 2012-03-13 2016-01-14 Method of controlling a climate control system

Related Parent Applications (1)

Application Number Title Priority Date Filing Date
US13/418,549 Continuation US9266407B2 (en) 2012-03-13 2012-03-13 Climate control system for a vehicle and a method of control

Publications (2)

Publication Number Publication Date
US20160129763A1 US20160129763A1 (en) 2016-05-12
US10343497B2 true US10343497B2 (en) 2019-07-09

Family

ID=49069146

Family Applications (2)

Application Number Title Priority Date Filing Date
US13/418,549 Active 2034-02-06 US9266407B2 (en) 2012-03-13 2012-03-13 Climate control system for a vehicle and a method of control
US14/995,828 Active 2033-11-28 US10343497B2 (en) 2012-03-13 2016-01-14 Method of controlling a climate control system

Family Applications Before (1)

Application Number Title Priority Date Filing Date
US13/418,549 Active 2034-02-06 US9266407B2 (en) 2012-03-13 2012-03-13 Climate control system for a vehicle and a method of control

Country Status (2)

Country Link
US (2) US9266407B2 (en)
CN (1) CN203172399U (en)

Families Citing this family (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
WO2012033118A1 (en) * 2010-09-09 2012-03-15 Watanabe Takumasa Anti-fogging and air-conditioning system for electric vehicle, dehumidifying unit, dehumidifying cassette, and dehumidifying member
JP6217522B2 (en) * 2014-05-21 2017-10-25 株式会社デンソー Humidifier
US20160229257A1 (en) * 2015-02-10 2016-08-11 Ford Global Technologies, Llc Vehicle and vehicle cabin air extraction system
US10279647B2 (en) * 2016-03-23 2019-05-07 Hanon Systems Integrated thermal management system
CN106114146A (en) * 2016-07-28 2016-11-16 太仓文广汇清洁设备有限公司 A kind of vehicular air purifier
CN107471964A (en) * 2017-08-25 2017-12-15 郝翰 Parking of automobile refrigerating plant
US12114815B2 (en) * 2020-03-19 2024-10-15 Lg Electronics Inc. Drying apparatus and related methods
CN111957192A (en) * 2020-09-23 2020-11-20 郑州市污水净化有限公司 System for handle mud aerobic fermentation waste gas
CN120112348A (en) * 2023-07-26 2025-06-06 曼·胡默尔有限公司 Cabin air control system with a single adsorption unit

Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4340112A (en) 1979-08-20 1982-07-20 Diesel Kiki Company, Ltd. Vehicle air temperature control apparatus
US5054378A (en) 1990-07-20 1991-10-08 Speece Donald R Combination commuter van and air conditioner system therefor
US5341652A (en) 1991-10-17 1994-08-30 Honda Giken Kogyo Kabushiki Kaisha Air-conditioning system for vehicle
US5566880A (en) 1993-02-11 1996-10-22 Behr Gmbh & Co. Process and apparatus for heating the passenger compartment of a motor vehicle
DE19653964A1 (en) 1996-12-21 1998-06-25 Behr Gmbh & Co Air conditioning unit for vehicle interior equipped for filtration, moisture adsorption and regeneration
US5938523A (en) 1994-08-08 1999-08-17 Behr Gmbh & Co. Device for removing the noxious and aromatic substances from an air flow fed into the interior of a vehicle
US5941767A (en) 1995-05-17 1999-08-24 Fukuda; Kozo Air circulating device
US5975191A (en) 1996-09-25 1999-11-02 Calsonic Corporation Vehicle air conditioner
US20010029162A1 (en) 2000-03-31 2001-10-11 Takeshi Yoshinori Vehicle air conditioner having air suction port for each seat
US6481222B1 (en) 1994-07-07 2002-11-19 James G. T. Denniston Desiccant based humidification/dehumidification system
US6530973B2 (en) 2001-01-16 2003-03-11 Visteion Global Technologies, Inc. Air desiccant system and method for automotive climate control
US6796894B1 (en) 1999-11-24 2004-09-28 Toyota Jidosha Kabushiki Kaisha Vehicular air conditioning apparatus
US20080083230A1 (en) 2006-10-06 2008-04-10 Richard Giallombardo Apparatus and method for enhanced dehumidification
US20080299226A1 (en) 2006-01-09 2008-12-04 Jack Mentkow Hemostatic Agent Composition and Method of Delivery
US20100107673A1 (en) 2007-03-30 2010-05-06 Toyota Jidosha Kabushiki Kaisha Dehumidification/humidification device for vehicle

Patent Citations (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4340112A (en) 1979-08-20 1982-07-20 Diesel Kiki Company, Ltd. Vehicle air temperature control apparatus
US5054378A (en) 1990-07-20 1991-10-08 Speece Donald R Combination commuter van and air conditioner system therefor
US5341652A (en) 1991-10-17 1994-08-30 Honda Giken Kogyo Kabushiki Kaisha Air-conditioning system for vehicle
US5566880A (en) 1993-02-11 1996-10-22 Behr Gmbh & Co. Process and apparatus for heating the passenger compartment of a motor vehicle
US6481222B1 (en) 1994-07-07 2002-11-19 James G. T. Denniston Desiccant based humidification/dehumidification system
US5938523A (en) 1994-08-08 1999-08-17 Behr Gmbh & Co. Device for removing the noxious and aromatic substances from an air flow fed into the interior of a vehicle
US5941767A (en) 1995-05-17 1999-08-24 Fukuda; Kozo Air circulating device
US5975191A (en) 1996-09-25 1999-11-02 Calsonic Corporation Vehicle air conditioner
DE19653964A1 (en) 1996-12-21 1998-06-25 Behr Gmbh & Co Air conditioning unit for vehicle interior equipped for filtration, moisture adsorption and regeneration
US6796894B1 (en) 1999-11-24 2004-09-28 Toyota Jidosha Kabushiki Kaisha Vehicular air conditioning apparatus
US20010029162A1 (en) 2000-03-31 2001-10-11 Takeshi Yoshinori Vehicle air conditioner having air suction port for each seat
US6530973B2 (en) 2001-01-16 2003-03-11 Visteion Global Technologies, Inc. Air desiccant system and method for automotive climate control
US20080299226A1 (en) 2006-01-09 2008-12-04 Jack Mentkow Hemostatic Agent Composition and Method of Delivery
US20080083230A1 (en) 2006-10-06 2008-04-10 Richard Giallombardo Apparatus and method for enhanced dehumidification
US20100107673A1 (en) 2007-03-30 2010-05-06 Toyota Jidosha Kabushiki Kaisha Dehumidification/humidification device for vehicle

Also Published As

Publication number Publication date
US20160129763A1 (en) 2016-05-12
US9266407B2 (en) 2016-02-23
US20130240173A1 (en) 2013-09-19
CN203172399U (en) 2013-09-04

Similar Documents

Publication Publication Date Title
US10343497B2 (en) Method of controlling a climate control system
US10618371B2 (en) Air conditioner for vehicle
CN101234590B (en) Method for vehicle environmental management
CN104129253B (en) Atmosphere control system and control method with multiple absorbers
CN108698473A (en) Seat air conditioner device
US20100181061A1 (en) Air-conditioner for vehicle
US20040107713A1 (en) Vehicle air conditioner with ventilating function while parking
US9919579B2 (en) Air conditioning system for driver's seat and method of controlling air conditioning of seat
US11161390B2 (en) Air flow control system
WO2012056303A1 (en) An air-conditioned seat for a cabin of a vehicle
JP2016064695A (en) Air conditioner for vehicles
CN111559219A (en) Vehicle-mounted air conditioner and control method thereof
WO2014103219A1 (en) Seat air conditioning device
KR101946520B1 (en) Air conditioning system for automotive vehicles
WO2020246035A1 (en) Vehicle air-conditioning ventilator
US6659858B2 (en) Method and arrangement for regulating air mixing in a heating or air conditioning system of a motor vehicle
US20070093194A1 (en) Air flow control system and method for vehicle ventilation
JPH08295117A (en) Air conditioning device for automobile
JP6032353B2 (en) Dedicated floor bleed for air conditioning system
JP2018069976A (en) Air conditioning device for vehicle
JP3633780B2 (en) Vehicle seat air conditioner
US20210129626A1 (en) Hvac system including two-layer airflow cooling mode
CN111823810A (en) Air conditioner for vehicle
KR101677501B1 (en) Control method of air conditioner for vehicle
US20250256548A1 (en) Method and system for controlling a climate control system of a vehicle using a duct purge strategy

Legal Events

Date Code Title Description
STPP Information on status: patent application and granting procedure in general

Free format text: RESPONSE AFTER FINAL ACTION FORWARDED TO EXAMINER

STPP Information on status: patent application and granting procedure in general

Free format text: NOTICE OF ALLOWANCE MAILED -- APPLICATION RECEIVED IN OFFICE OF PUBLICATIONS

STPP Information on status: patent application and granting procedure in general

Free format text: PUBLICATIONS -- ISSUE FEE PAYMENT VERIFIED

STCF Information on status: patent grant

Free format text: PATENTED CASE

MAFP Maintenance fee payment

Free format text: PAYMENT OF MAINTENANCE FEE, 4TH YEAR, LARGE ENTITY (ORIGINAL EVENT CODE: M1551); ENTITY STATUS OF PATENT OWNER: LARGE ENTITY

Year of fee payment: 4